Technological Evolution of Ultrasound Devices: A Review

Gayathri Nayak, Vallidevi Bolla, S. Balivada,  Prabhudev P.
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引用次数: 1

Abstract

Numerous imaging technologies have been researched upon and applied in the field of medicine to enhance clinicians’ faculty for diagnosis of indispositions or diseases and the modalities include magnetic resonance imaging (MRI), X-ray imaging, computed tomography (CT) and ultrasound (US). One imaging technique that is used to identify abnormalities in various body areas is the ultrasound. It is a non-invasive method that provides real-time imaging without radiation exposure. This article mainly focuses on ultrasonography and the various technological and equipment advancements over the years. It is more difficult to operate conventional ultrasound equipment due to its complex structure, which is large in size and takes up more space. For scanning different parts of the body, there are a variety of probes to choose from. The probes are selected based on the size and shape of the beam. Imaging can be performed in several modes, such as A mode, B mode, M mode, D mode, etc. Capacitive micro-machined ultrasound transducers (CMUTs) replace the traditional piezoelectric crystals in a transducer that produces ultrasonic waves. Ultrasonography has many applications in the diagnosis of various parts of the body, i.e., lungs, abdominal parts, heart, bladder, and so on. From the earliest ultrasound machines in the 1950s with patient immersion tanks to the hand held ultrasound devices in the late 2000s where images can be obtained on mobile screens, the evolution of this device over centuries has been phenomenal.
超声设备的技术发展综述
许多成像技术已经被研究和应用于医学领域,以提高临床医生对不适或疾病的诊断能力,其中包括磁共振成像(MRI)、x射线成像、计算机断层扫描(CT)和超声(US)。一种用于识别身体各个部位异常的成像技术是超声波。这是一种非侵入性的方法,可以提供实时成像,而无需辐射暴露。本文主要介绍近年来超声检查技术和设备的发展。常规超声设备结构复杂,体积大,占用空间大,操作难度大。对于扫描身体的不同部位,有多种探头可供选择。根据光束的大小和形状选择探头。可在多种模式下成像,如A模式、B模式、M模式、D模式等。电容式微机械超声换能器(CMUTs)取代了传统的压电晶体换能器来产生超声波。超声检查在身体各部位的诊断中有许多应用,如肺、腹部、心脏、膀胱等。从20世纪50年代最早的超声波设备,到21世纪后期的手持超声波设备,可以在移动屏幕上获得图像,几个世纪以来,这种设备的发展是惊人的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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